A Scalar Resonant-Filter-Bank-Based Output-Voltage Control Method and a Scalar Minimum-Switching-Loss Discontinuous PWM Method for the Four-Leg-Inverter-Based Three-Phase Four-Wire Power Supply
Метод управления выходным напряжением на основе скалярного резонансного банка фильтров и скалярный прерывистый ШИМ с минимальными потерями переключения для трехфазного четырехпроводного источника питания на четырехпроводном инверторе
2009-01-01
SCID: 54.1/r2wzmjpv
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four-leg inverteroutput-capacitor current-based active dampingscalar minimum-switching-loss discontinuous PWMstationary-frame resonant-filter bankthree-phase four-wire power supply
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Abstract (AI)
An all-scalar-control and pulsewidth-modulation (PWM) approach for the four-leg-inverter (FLI)-based three-phase transformerless four-wire power supply (PS) is proposed. The output voltage of each phase is controlled independently, and its controller is formed by a stationary-frame resonant-filter bank accompanied with proportional-control and output-capacitor current-based active-damping loops. The simple and easy to implement scalar-control method exhibits superior overall steady-state and dynamic performance in the PS applications involving loads with high crest factor and/or significant load imbalance. Utilizing the inverter zero-state partitioning, a generalized form of scalar PWM for the FLI is developed. A novel minimum loss discontinuous PWM method, which provides minimum switching losses under all loading conditions (including load imbalance), is derived. This simple scalar method provides superior performance, and unlike the vector methods, it is easy to implement. The controller and modulator design and implementation details for the system are given. Linear and nonlinear loads for balanced and imbalanced load operating conditions are considered. The scalar-control and PWM methods are proven by means of theory, simulations, and thorough laboratory experiments of a 5-kVA PS.
Key Findings
1
A generalized scalar PWM for the FLI based on inverter zero-state partitioning is developed.
2
A novel minimum-switching-loss discontinuous PWM method provides minimum switching losses under all loading conditions, including imbalanced loads.
3
An all-scalar control and PWM approach for four-leg-inverter (FLI) three-phase four-wire power supplies is proposed, enabling independent output-voltage control of each phase.
4
Design and implementation details are validated by theory, simulations, and laboratory experiments on a 5-kVA power supply with linear and nonlinear, balanced and imbalanced loads.
5
Each phase controller uses a stationary-frame resonant-filter bank with proportional control and output-capacitor-current-based active-damping loops for improved performance.
6
The scalar control and PWM methods are simple, easy to implement, and outperform vector methods in implementation complexity while delivering superior performance.
7
The scalar-control method yields superior steady-state and dynamic performance for loads with high crest factor and/or significant load imbalance.
Research Object
Four-leg-inverter-based three-phase transformerless four-wire power supply (5-kVA implementation)
Research Subject
Scalar resonant-filter-bank output-voltage control and scalar minimum-switching-loss discontinuous PWM methods including proportional and output-capacitor-current active-damping loops, inverter zero-state partitioning, and their steady-state/dynamic performance and loss minimization under balanced and imbalanced linear and nonlinear loads
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2009-01-01
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